Unconventional Spin Pumping and Magnetic Damping in an Insulating Compensated Ferrimagnet

Recently, the interest in spin pumping (SP) has escalated from ferromagnets into antiferromagnetic systems, potentially enabling fundamental physics and magnonic applications. Compensated ferrimagnets are considered alternative platforms for bridging ferro‐ and antiferromagnets, but their SP and the...

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Veröffentlicht in:Advanced materials (Weinheim) 2022-06, Vol.34 (24), p.e2200019-n/a
Hauptverfasser: Li, Yan, Zheng, Dongxing, Fang, Bin, Liu, Chen, Zhang, Chenhui, Chen, Aitian, Ma, Yinchang, Shen, Ka, Liu, Haoliang, Manchon, Aurélien, Zhang, Xixiang
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Sprache:eng
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Zusammenfassung:Recently, the interest in spin pumping (SP) has escalated from ferromagnets into antiferromagnetic systems, potentially enabling fundamental physics and magnonic applications. Compensated ferrimagnets are considered alternative platforms for bridging ferro‐ and antiferromagnets, but their SP and the associated magnetic damping have been largely overlooked so far despite their seminal importance for magnonics. Herein, an unconventional SP together with magnetic damping in an insulating compensated ferrimagnet Gd3Fe5O12 (GdIG) is reported. Remarkably, the divergence of the nonlocal effective magnetic damping induced by SP close to the compensation temperature in GdIG/Cu/Pt heterostructures is identified unambiguously. Furthermore, the coherent and incoherent spin currents, generated by SP and the spin Seebeck effect, respectively, undergo a distinct direction change with the variation of temperature. The physical mechanisms underlying these observations are self‐consistently clarified by the ferrimagnetic counterpart of SP and the handedness‐related spin‐wave spectra. The findings broaden the conventional paradigm of the ferromagnetic SP model and open new opportunities for exploring the ferrimagnetic magnonic devices. An unconventional spin pumping (SP) together with the divergent nonlocal magnetic damping is unambiguously reported in compensated ferrimagnetic Gd3Fe5O12‐based heterostructures. The coherent and incoherent spin currents undergo a distinct direction change with the variation of temperature. The underlying physical mechanisms are self‐consistently clarified by the ferrimagnetic counterpart of SP and the handedness‐related spin‐wave spectra.
ISSN:0935-9648
1521-4095
DOI:10.1002/adma.202200019